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General theory of microscopic dynamical response in surface probe microscopy: from imaging to dissipation.

机译:表面探针显微镜中微观动力学响应的一般理论:从成像到耗散。

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摘要

We present a general theory of atomistic dynamical response in surface probe microscopy when two solid surfaces move with respect to each other in close proximity, when atomic instabilities are likely to occur. These instabilities result in a bistable potential energy surface, leading to temperature dependent atomic scale topography and damping (dissipation) images. The theory is illustrated on noncontact atomic force microscopy and enables us to calculate, on the same footing, both the frequency shift and the excitation signal amplitude for tip oscillations. We show, using atomistic simulations, how dissipation occurs through reversible jumps of a surface atom between the minima when a tip is close to the surface, resulting in dissipated energies of 1.6 eV. We also demonstrate that atomic instabilities lead to jumps in the frequency shift that are smoothed out with increasing temperature.
机译:我们提出了一种在表面探针显微镜中原子动力学响应的一般理论,当两个固体表面相对于彼此紧密靠近地移动时,很可能会发生原子不稳定性。这些不稳定性导致双稳态势能表面,从而导致与温度相关的原子尺度形貌和阻尼(耗散)图像。该理论在非接触原子力显微镜上得到了说明,使我们能够在相同的基础上计算尖端振荡的频移和激励信号幅度。我们显示,使用原子模拟,当尖端靠近表面时,表面原子之间在最小值之间的可逆跃迁是如何发生耗散的,从而导致耗散的能量为1.6 eV。我们还证明了原子的不稳定性会导致频率漂移的跃迁,该跃迁会随着温度的升高而被消除。

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